The arc 64° 43′ 31", which corresponds to sin c is not the value of the side AB: for the side AB must be greater than b, since it lies opposite to a greater angle. But b=84° 14′ 29′′ : hence the side AB must be the supplement of 64° 43′ 31′′, or 115° 16′ 29′′. Ex. 2. Given b=91° 03′ 25′′, a=40° 36′ 37′′, and A=35° 57′ 15": required the remaining parts, when the obtuse angle B is taken. Having given two angles and a side opposite one of them, to find the remaining parts. For this case, we employ the equation (1.) sin A : sin B : : sin a : sin b. Ex. 1. In a spherical triangle ABC, there are given the angle A=50° 12′, B=58° 8', and the side a=62° 42′ ; to find the remaining parts. We see here, as in the last example, that there are two arcs corresponding to the 4th term of the proportion, and these arcs are supplements of each other, since they have the same sine. It does not follow, however, that both of them will satisfy all the conditions of the question. If they do, there will be two triangles; if not, there will be but one. To determine when there are two triangles, and also when there is but one, let us consider the second of equations (8.) R2 cos B-sin A sin C cos b-R cos A cos C, Now, if cos B be greater than cos A we shall have R2 cos B>R cos A cos C, which gives and hence the sign of the second member of the equation will depend on that of cos B, and consequently cos b and cos B will have the same algebraic sign, or b and B will be of the same species. But when cos B>cos A the sin B<sin A: hence If the sine of the angle opposite the required side be less than the sine of the other given angle, there will be but one solution. If, however, sin B>sin A, the cos B will be less than cos A, and it is plain that such a value may then be given to cos C, as to render R2 cos BR cos A cos C, or the sign of the second member of the equation may be made to depend on cos C. We can therefore give such values to C as to satisfy the two equations Hence, if the sine of the angle opposite the required side be greater than the sine of the other given angle there will be two solutions. Let us first suppose the side b to be less than 90°, or equa. to 79° 12' 10". If now, we let fall from the angle C a perpendicular on the base BA, the triangle will be divided into two right angled triangles, in each of which there will be two parts known besides the right angle. Calculating the parts by Napier's rules we find, C=130° 54' 28" c=119° 03′ 26′′. If we take the side b=100° 47′ 50′′, we shall find C=156° 15′ 06′′ c=152° 14' 18". Ex. 2. In a spherical triangle ABC there are given A=103° 59′ 57′′, B=46° 18′ 7′′, and a=42° 8′ 48′′; required the remaining parts. There will but one triangle, since sin B<sin A. Having given the three sides of a spherical triangle to find the angles. For this case we use equations (3.). cos A-RV sins sin (s-a) = sin b sin c Ex. 1. In an oblique angled spherical triangle there are given a 56° 40', b-83° 13' and c-114° 30'; required the angles. The addition of twice the logarithm of radius, or 20, to the numerator of the quantity under the radical just cancels the 20 which is to be subtracted on account of the arithmetical complements, to that the 20, in both cases, may be omitted. Applying the same formulas to the angles B and C, we find, B= 62° 55′ 46" Ex. 2. In a spherical triangle there are given a 40° 18′ 29′′, b=67° 14′ 28′′, and c=89° 47' 6": required the three angles. CASE IV. Having given the three angles of a spherical triangle, to find the three sides. For this case we employ equations (7.) cos(S-B) cos(S-C) cosa RV sin B sin C Ex. 1. In a spherical triangle ABC there are given A=48° 30', B=125° 20′, and C=62° 54′; required the sides. Ex. 2. In a spherical triangle ABC, there are given A=109° 55′ 42′′, B=116° 38′ 33′′, and C-120° 43′ 37′′; required the three sides. Having given in a spherical triangle, two sides and their included angle, to find the remaining parts. For this case we employ the two first of Napier's Analogies. cos (a+b) cos (a-b): cot C: tang (A+B) sin (a+b) sin (a-b): cot C: tang (A-B). Having found the half sum and the half difference of the angles A and B, the angles themselves become known; for, the greater angle is equal to the half sum plus the half difference, and the lesser is equal to the half sum minus the half diffe. rence. The greater angle is then to be placed opposite the greater side. The remaining side of the triangle can then be found by Case II. Ex. 1. In a spherical triangle ABC, there are given a=68° 46' 2", b=37° 10', and C-39° 23'; to find the remaining parts. }(a+b)=52° 58′ 1′′, (a—b)=15° 48′ 1′′, C=19° 41′ 30′′. As cos (a+b) 52° 58′ 1" log. ar.-comp. 0.220210 (ab) 15° 48′ 1′′ C 19° 41′ 30′′ As sin 9.983271 10.446254 10.649735 (a+b) 52° 58' 1" log. ar.-comp. 0.097840 Is to sin(a-b) 15° 48′ So is cot 1′′ C 19° 41′ 30′′ Totang (A-B) 43° 37′ 21′′ 9.435016 10.446254 9.979110 Hence, A=77° 22′ 25′′ +43° 37′ 21′′-120° 59′ 46′′ B-77° 22' 25"-43° 37′ 21′′ 33° 45′ 04′′ side c = Ex. 2. In a spherical triangle ABC, there are given b=83° 19′ 42′′, c=23° 27′ 46′′, the contained angle A=20° 39′ 48′′; to find the remaining parts. In a spherical triangle, having given two angles and the included side to find the remaining parts. |